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Modelling Knock in Spark-Ignition Engines Using a G-Equation Combustion Model Incorporating Detailed Chemical Kinetics

机译:使用G-Aquation Combustion模型采用详细化学动力学的G-arequity Combustion模型建模爆震

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In this paper, knock in a Ford single-cylinder, direct-injection, spark-ignition (DISI) engine was modeled and investigated using the KIVA-3V code with a G-equation combustion model coupled with detailed chemical kinetics. The deflagrative turbulent flame propagation was described by the G-equation combustion model. A 22-species, 42-reaction iso-octane (iC{sub}8H{sub}18) mechanism was adopted to model the auto-ignition process of the gasoline/air/residual-gas mixture ahead of the flame front. The iso-octane mechanism was originally validated by ignition delay tests in a rapid compression machine. In this study, the mechanism was tested by comparing the simulated ignition delay time in a constant volume mesh with the values measured in a shock tube under different initial temperature, pressure and equivalence ratio conditions, and acceptable agreements were obtained. The mechanism was further validated by modelling a gasoline homogeneous charge compression ignition (HCCI) engine at both low and high engine speeds. The G-equation combustion model was validated on the Ford DISI engine with spark advance and intake manifold pressure sweeps. Based on the model validation, knocking combustion under boost and globally stoichiometric operating conditions was simulated. Finally, knock mitigation strategies using cooled EGR and/or "two-stage mixing" were assessed based on the numerical analysis.
机译:在本文中,使用与详细的化学动力学联接的G型燃烧模型建模并研究了螺旋单缸,直喷,火花点火(DISI)发动机。通过G型燃烧模型描述了脱果状湍流火焰传播。采用22种,42-反应异辛烷(IC {Sub} 8H {Sub} 18)机制来模拟汽油/空气/残余气体混合物前方的自燃过程。异辛烷机制最初通过快速压缩机中的点火延迟试验验证。在该研究中,通过将模拟的点火延迟时间与在不同初始温度,压力和等效比条件下的冲击管中测量的值进行比较来测试该机制,并获得了可接受的达成符合可接受的协议。通过在低和高发动机速度下建模汽油均匀电荷压缩点火(HCCI)发动机来进一步验证该机制。 G型燃烧模型在具有火花推进和进气歧管压力扫描的福特DISI发动机上验证。基于模型验证,模拟了升压和全球化学计量操作条件下的爆震燃烧。最后,根据数值分析评估使用冷却EGR和/或“两阶段混合”的敲击缓解策略。

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